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Two-dimensional cuprate high-temperature superconductivity

ORAL

Abstract

Dimensionality is of fundamental importance in cuprate high-temperature superconductivity: all cuprate superconductors adopt layered structure, and most high-temperature superconductivity theories are based on two-dimensional (2D) models. A monolayer Bi2201 contains only a single layer of CuO2 plane, and therefore represents a cuprate superconductor in the ultimate 2D limit. Here, we probe the high-temperature superconductivity in La doped Bi2201 (Bi2Sr2-xLaxCuO6+δ) single crystals down to monolayer (i.e. half unit cell). We show that monolayer Bi2201 has a transition temperature Tc approximately 3 K lower than the bulk Tc, and the transport in the vortex liquid regime is also distinctively different from that in the bulk. The extreme thickness brings unprecedented tunability. We succeed in covering the entire phase diagram of Bi2201 with controlled oxygenation in a single monolayer sample. Taking advantages of such tunability, we discover an anomalous metal phase in the superconductor-insulator transition. Our results establish monolayer Bi2201 as a new two-dimensional material with highly tunable high-temperature superconductivity.

Presenters

  • Hengsheng Luo

    Fudan Univ

Authors

  • Hengsheng Luo

    Fudan Univ

  • Yijun Yu

    Fudan Univ, Stanford University

  • Liguo Ma

    Fudan Univ, Cornell University

  • Dongjoon Song

    National Institute of Advanced Industrial Science and Technology, Department of Physics and Astronomy and Quantum Matter Institute, University of British Columbia

  • Ruidan Zhong

    Shanghai Jiao Tong Univ

  • Peng Cai

    Renmin University of China

  • Jian Shen

    Fudan Univ

  • Genda Gu

    Brookhaven National Laboratory

  • Hiroshi Eisaki

    Inst. of Advanced Industrial Science and Tech., Tsukuba, Ibaraki 305-8568, Japan., National Institute of Advanced Industrial Science and Technology, Electronics and Photonics Research Institute, National Institute of Advanced Industrial Science and Technology, Tsukuba, Ibaraki, Japan, AIST, Inst. of Advanced Industrial Science and Tech., AIST, Tsukuba, Japan

  • Xianhui Chen

    Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, 230026, China, University of Science and Technology of China

  • Wei Ruan

    Fudan Univ, University of California, Berkeley

  • Yuanbo Zhang

    Fudan Univ